Maximum density hole droplets of an antidot in strong magnetic fields

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We investigate a quantum antidot in the integer quantum Hall regime (the filling factor is two) by using a Hartree-Fock approach and by transforming the electron antidot into a system which confines holes via an electron-hole transformation. We find that its ground state is the maximum density droplet of holes in certain parameter ranges. The competition between electron-electron interactions and the confinement potential governs the properties of the hole droplet such as its spin configuration. The ground-state transitions between the droplets with different spin configurations occur as magnetic field varies. For a bell-shape antidot containing about 300 holes, the features of the transitions are in good agreement with the predictions of a recently proposed capacitive interaction model for antidots as well as recent experimental observations. We show this agreement by obtaining the parameters of the capacitive interaction model from the Hartree-Fock results. An inverse parabolic antidot is also studied. Its ground-state transitions, however, display different magnetic-field dependence from that of a bell-shaped antidot. Our study demonstrates that the shape of antidot potential affects its physical properties significantly.
Publisher
AMER PHYSICAL SOC
Issue Date
2004-08
Language
English
Article Type
Article
Keywords

QUANTUM HALL REGIME; AHARONOV-BOHM OSCILLATIONS; DOTS; STATES; SKYRMIONS; CHARGE; EDGES

Citation

PHYSICAL REVIEW B, v.70, pp.575 - 585

ISSN
1098-0121
DOI
10.1103/PhysRevB.70.085322
URI
http://hdl.handle.net/10203/20397
Appears in Collection
PH-Journal Papers(저널논문)
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